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140 lines
5.9 KiB
Rust
140 lines
5.9 KiB
Rust
#[cfg(feature = "master")]
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use gccjit::Context;
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use rustc_codegen_ssa::target_features;
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use rustc_session::Session;
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use smallvec::{SmallVec, smallvec};
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fn gcc_features_by_flags(sess: &Session, features: &mut Vec<String>) {
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target_features::retpoline_features_by_flags(sess, features);
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// FIXME: LLVM also sets +reserve-x18 here under some conditions.
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}
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/// The list of GCC features computed from CLI flags (`-Ctarget-cpu`, `-Ctarget-feature`,
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/// `--target` and similar).
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pub(crate) fn global_gcc_features(sess: &Session, diagnostics: bool) -> Vec<String> {
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// Features that come earlier are overridden by conflicting features later in the string.
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// Typically we'll want more explicit settings to override the implicit ones, so:
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//
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// * Features from -Ctarget-cpu=*; are overridden by [^1]
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// * Features implied by --target; are overridden by
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// * Features from -Ctarget-feature; are overridden by
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// * function specific features.
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//
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// [^1]: target-cpu=native is handled here, other target-cpu values are handled implicitly
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// through GCC march implementation.
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//
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// FIXME(nagisa): it isn't clear what's the best interaction between features implied by
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// `-Ctarget-cpu` and `--target` are. On one hand, you'd expect CLI arguments to always
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// override anything that's implicit, so e.g. when there's no `--target` flag, features implied
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// the host target are overridden by `-Ctarget-cpu=*`. On the other hand, what about when both
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// `--target` and `-Ctarget-cpu=*` are specified? Both then imply some target features and both
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// flags are specified by the user on the CLI. It isn't as clear-cut which order of precedence
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// should be taken in cases like these.
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let mut features = vec![];
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// Features implied by an implicit or explicit `--target`.
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features.extend(sess.target.features.split(',').filter(|v| !v.is_empty()).map(String::from));
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// -Ctarget-features
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target_features::flag_to_backend_features(
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sess,
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diagnostics,
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|feature| to_gcc_features(sess, feature),
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|feature, enable| {
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// We run through `to_gcc_features` when
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// passing requests down to GCC. This means that all in-language
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// features also work on the command line instead of having two
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// different names when the GCC name and the Rust name differ.
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features.extend(
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to_gcc_features(sess, feature)
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.iter()
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.flat_map(|feat| to_gcc_features(sess, feat).into_iter())
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.map(
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|feature| {
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if !enable { format!("-{}", feature) } else { feature.to_string() }
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},
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),
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);
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},
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);
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gcc_features_by_flags(sess, &mut features);
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features
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}
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// To find a list of GCC's names, check https://gcc.gnu.org/onlinedocs/gcc/Function-Attributes.html
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pub fn to_gcc_features<'a>(sess: &Session, s: &'a str) -> SmallVec<[&'a str; 2]> {
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let arch = if sess.target.arch == "x86_64" { "x86" } else { &*sess.target.arch };
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// cSpell:disable
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match (arch, s) {
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// FIXME: seems like x87 does not exist?
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("x86", "x87") => smallvec![],
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("x86", "sse4.2") => smallvec!["sse4.2", "crc32"],
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("x86", "pclmulqdq") => smallvec!["pclmul"],
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("x86", "rdrand") => smallvec!["rdrnd"],
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("x86", "bmi1") => smallvec!["bmi"],
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("x86", "cmpxchg16b") => smallvec!["cx16"],
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("x86", "avx512vaes") => smallvec!["vaes"],
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("x86", "avx512gfni") => smallvec!["gfni"],
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("x86", "avx512vpclmulqdq") => smallvec!["vpclmulqdq"],
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// NOTE: seems like GCC requires 'avx512bw' for 'avx512vbmi2'.
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("x86", "avx512vbmi2") => smallvec!["avx512vbmi2", "avx512bw"],
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// NOTE: seems like GCC requires 'avx512bw' for 'avx512bitalg'.
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("x86", "avx512bitalg") => smallvec!["avx512bitalg", "avx512bw"],
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("aarch64", "rcpc2") => smallvec!["rcpc-immo"],
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("aarch64", "dpb") => smallvec!["ccpp"],
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("aarch64", "dpb2") => smallvec!["ccdp"],
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("aarch64", "frintts") => smallvec!["fptoint"],
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("aarch64", "fcma") => smallvec!["complxnum"],
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("aarch64", "pmuv3") => smallvec!["perfmon"],
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("aarch64", "paca") => smallvec!["pauth"],
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("aarch64", "pacg") => smallvec!["pauth"],
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// Rust ties fp and neon together. In GCC neon implicitly enables fp,
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// but we manually enable neon when a feature only implicitly enables fp
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("aarch64", "f32mm") => smallvec!["f32mm", "neon"],
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("aarch64", "f64mm") => smallvec!["f64mm", "neon"],
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("aarch64", "fhm") => smallvec!["fp16fml", "neon"],
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("aarch64", "fp16") => smallvec!["fullfp16", "neon"],
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("aarch64", "jsconv") => smallvec!["jsconv", "neon"],
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("aarch64", "sve") => smallvec!["sve", "neon"],
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("aarch64", "sve2") => smallvec!["sve2", "neon"],
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("aarch64", "sve2-aes") => smallvec!["sve2-aes", "neon"],
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("aarch64", "sve2-sm4") => smallvec!["sve2-sm4", "neon"],
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("aarch64", "sve2-sha3") => smallvec!["sve2-sha3", "neon"],
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("aarch64", "sve2-bitperm") => smallvec!["sve2-bitperm", "neon"],
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(_, s) => smallvec![s],
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}
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// cSpell:enable
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}
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fn arch_to_gcc(name: &str) -> &str {
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match name {
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"M68000" => "68000",
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"M68020" => "68020",
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_ => name,
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}
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}
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fn handle_native(name: &str) -> &str {
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if name != "native" {
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return arch_to_gcc(name);
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}
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#[cfg(feature = "master")]
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{
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// Get the native arch.
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let context = Context::default();
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context.get_target_info().arch().unwrap().to_str().unwrap()
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}
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#[cfg(not(feature = "master"))]
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unimplemented!();
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}
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pub fn target_cpu(sess: &Session) -> &str {
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match sess.opts.cg.target_cpu {
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Some(ref name) => handle_native(name),
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None => handle_native(sess.target.cpu.as_ref()),
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}
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}
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